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An experimental evaluation of prediction models for the mechanical behavior of unreinforced, lime-mortar masonry under compression

机译:未受压石灰砂浆砌体受压力学性能预测模型的实验评估

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摘要

This paper contributes to the understanding of lime-mortar masonry strength and deformation (which determine durability and allowable stresses/stiffness in design codes) by measuring the mechanical properties of brick bound with lime and lime-cement mortars. Based on the regression analysis of experimental results, models to estimate lime-mortar masonry compressive strength are proposed (less accurate for hydrated lime (CL90s) masonry due to the disparity between mortar and brick strengths). Also, three relationships between masonry elastic modulus and its compressive strength are proposed for cement-lime; hydraulic lime (NHL3.5 and 5); and hydrated/feebly hydraulic lime masonries respectively.Disagreement between the experimental results and former mathematical prediction models (proposed primarily for cement masonry) is caused by a lack of provision for the significant deformation of lime masonry and the relative changes in strength and stiffness between mortar and brick over time (at 6 months and 1 year, the NHL 3.5 and 5 mortars are often stronger than the brick). Eurocode 6 provided the best predictions for the compressive strength of lime and cement-lime masonry based on the strength of their components. All models vastly overestimated the strength of CL90s masonry at 28 days however, Eurocode 6 became an accurate predictor after 6 months, when the mortar had acquired most of its final strength and stiffness.The experimental results agreed with former stress-strain curves. It was evidenced that mortar strongly impacts masonry deformation, and that the masonry stress/strain relationship becomes increasingly non-linear as mortar strength lowers. It was also noted that, the influence of masonry stiffness on its compressive strength becomes smaller as the mortar hydraulicity increases.
机译:通过测量用石灰和石灰水泥砂浆粘结的砖的机械性能,本文有助于理解石灰砂浆的砌体强度和变形(在设计规范中确定耐久性和允许的应力/刚度)。基于实验结果的回归分析,提出了估计石灰砂浆砌体抗压强度的模型(由于砂浆和砖强度之间的差异,对熟石灰砌体的抗压强度较差)。同时,提出了水泥灰的砌体弹性模量与其抗压强度的三种关系。液压石灰(NHL3.5和5);实验结果与以前的数学预测模型(主要针对水泥砌体)之间的不一致是由于缺乏石灰石的显着变形以及砂浆之间的强度和刚度的相对变化而引起的以及随时间推移的砖块(在6个月零一年的时间里,NHL 3.5和5灰浆通常比砖块更坚固)。根据其成分的强度,欧洲规范6提供了关于石灰和水泥石灰砌体抗压强度的最佳预测。所有模型都大大高估了CL90砌体在28天的强度,但是当砂浆获得了其最终的最终强度和刚度时,欧洲规范6成为6个月后的准确预测指标。实验结果与以前的应力-应变曲线一致。有证据表明,砂浆强烈影响砌体变形,并且随着砂浆强度降低,砌体应力/应变关系变得越来越非线性。还应注意的是,随着砂浆水力的增加,砌体刚度对其抗压强度的影响变小。

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